EP2790431B1 - Procédé et dispositif pour le transfert intercellulaire d'un spectre de fréquence dans un système de radio cognitive - Google Patents

Procédé et dispositif pour le transfert intercellulaire d'un spectre de fréquence dans un système de radio cognitive Download PDF

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EP2790431B1
EP2790431B1 EP12856138.8A EP12856138A EP2790431B1 EP 2790431 B1 EP2790431 B1 EP 2790431B1 EP 12856138 A EP12856138 A EP 12856138A EP 2790431 B1 EP2790431 B1 EP 2790431B1
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dwndi
cell
ues
base station
spectrum handover
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EP2790431A1 (fr
EP2790431A4 (fr
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Wenling Bai
Zhuo Gao
Chenggang Jiang
Yuanyuan Li
Yu Yang
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China Academy of Telecommunications Technology CATT
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China Academy of Telecommunications Technology CATT
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0055Transmission or use of information for re-establishing the radio link
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/24Reselection being triggered by specific parameters
    • H04W36/249Reselection being triggered by specific parameters according to timing information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W12/00Security arrangements; Authentication; Protecting privacy or anonymity
    • H04W12/06Authentication
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W12/00Security arrangements; Authentication; Protecting privacy or anonymity
    • H04W12/60Context-dependent security
    • H04W12/69Identity-dependent
    • H04W12/72Subscriber identity
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/14Spectrum sharing arrangements between different networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/06Reselecting a communication resource in the serving access point

Definitions

  • the present disclosure relates to communications, and particularly, to a method and an apparatus for spectrum handover in cognitive radio (CR) networks.
  • CR cognitive radio
  • CR Cognitive Radio
  • a CR system can occasionally access an available frequency of an authorized system only on the precondition that traffic of the authorized system will not be impacted by the CR system. Thus, it is required that: (1) the CR system should have the ability of correctly detecting an available frequency channel of the authorized system; (2) the CR system should have the ability of performing spectrum handover, i.e., the CR system should quit using the current working frequency in time after detecting the authorized system appears on the current working frequency.
  • the spectrum handover is required to minimize its impact on communication signals of the authorized system, i.e., after detecting an authorized user appears, the CR system should quickly quit using the current working frequency (i.e., a working frequency) and select a new frequency (i.e., a target frequency) to establish a cell. Further, CR users should be quickly handed over to the newly established cell during the process to guarantee traffic continuity of the CR users.
  • a working frequency i.e., a working frequency
  • a new frequency i.e., a target frequency
  • Fig. 1 is a flowchart illustrating a spectrum handover process according to a first conventional mechanism.
  • a base station of a CR system detects an authorized user appears at the current working frequency (i.e., the working frequency), sends a UE-Specific spectrum handover command to each user equipment (UE) that needs a handover within the cell (which is also referred to as a relevant UE).
  • the UE receives the spectrum handover command and starts the spectrum handover process.
  • the base station stops transmission and reception at the working frequency, and recovers the cell at the target frequency.
  • Fig. 2 is a flowchart illustrating a spectrum handover process according to a second conventional mechanism.
  • a base station of a CR system detects an authorized user appears at the current working frequency (i.e., the working frequency), informs UEs within the cell of an update in system information via a certain manner such as paging or the like.
  • a UE receives the paging information, obtains a system information update notification.
  • the base station of the CR system broadcasts updated system information (i.e., system broadcast information including a cell-common spectrum handover command).
  • the UE receives the spectrum handover command, and starts the spectrum handover process. Then the base station stops transmission and reception at the working frequency, and recovers the cell at the target frequency.
  • the first mechanism all UEs that are in the RRC-connected status within the cell are required to be handed over to the target frequency point during the spectrum handover. Since there are generally a large number of UEs (e.g., more than 1200) within a cell that are in the RRC-connected status, the spectrum handover command needs to be sent to the UEs one by one. The large number of spectrum handover commands generates a long transmission delay, thus the spectrum handover process is time-consuming.
  • the above first and second mechanisms both have a time-consuming spectrum handover process.
  • the CR system cannot protect authorzied users from interference, and cannot satisfy traffic continuity requirements of users in the CR systems.
  • Apparatus and method for dynamic resource exchange in cognitive radio (CR) based communication system provides a mechanism of a base station exchange a channel with a neighboring base station when the base station detects a primary user from a primary/licensed system, so as to enhance the effective utilization of channel resources.
  • Method for controlling inter-frequency hand-off in cognitive radio based cellular relay communication network ( US 2011/0122840A1 ) is about a mobile station requests inter-frequency hand-off in the case of a shadow area.
  • a method for handover between frequency allocation in broadband wireless access system (WO 2006/073225A2 ) is about a serving base station transmits data to a mobile subscriber station using at least two frequency allocations, receives a handover request message from a mobile subscriber station, and controls the handover.
  • Method and apparatus for UL interference avoidance by DL measurements and IFHO is about measuring signal characteristic of a downlink channel currently not used by a mobile device to determine if the signal characteristic has increased or decreased, reporting the increase or decrease to a network device, and a handover from the downlink channel currently used by the mobile device is launched thus avoiding interference in an uplink channel not currently used by the mobile device.
  • Re-synchronization of temporary UE IDs in a wireless communication system ( WO 2008/042883A1 ) provides techniques for enabling a UE to use the same C-RNTI as its unique identity in a target cell with that used in a serving cell after handover.
  • Group handover in a cellular communications network provides a method of grouping mobile stations according to signal strength and sending a handover instruction to a group of mobile stations when the loading of the working frequency of the group reaches a pre-set threshold.
  • Method and apparatus for enhancing system efficiency in a wireless communications system is about allocating a plurality of common H-RNTIs to a plurality of UE groups.
  • Various examples of the present disclosure provide a method and an apparatus for spectrum handover in CR systems to implement fast spectrum handover.
  • Various examples provide a method for spectrum handover in CR systems, including:
  • Various examples also provide an apparatus for spectrum handover in CR systems, including:
  • a base station including:
  • UE user equipment
  • the technical mechanism of examples has at least the following merits compared to conventional mechanisms: fast and accurate spectrum handover, reduced transmission delay of spectrum handover commands, no interference to users of authorized systems. Therefore, the technical mechanism of various examples can protect service quality of authorized systems while satisfying requirements of users of the CR system for service continuity.
  • This example provides a method for spectrum handover in CR systems.
  • the method is applicable to various mobile communications systems if the CR technique is supported, e.g., a Long Term Evolution (LTE) system, a Time Division-Synchronous Code Division Multiple Access (TD-SCDMA) system, a High-Speed Packet Access (HSPA) system, a Code Division Multiple Access (CDMA)-2000 system, a Wideband Code Division Multiple Access (WCDMA) system, a Global System for Mobile communications (GSM) system.
  • LTE Long Term Evolution
  • TD-SCDMA Time Division-Synchronous Code Division Multiple Access
  • HSPA High-Speed Packet Access
  • CDMA Code Division Multiple Access
  • WCDMA Wideband Code Division Multiple Access
  • GSM Global System for Mobile communications
  • the method for spectrum handover in CR systems may include the following procedures.
  • a base station (which is a base station of a CR system) negotiates a CR dedicated wireless network device identity (simply referred to as CR-DWNDI) for transmitting spectrum handover commands with a UE (which is a CR-based UE in the CR system) in a cell.
  • CR-DWNDI CR dedicated wireless network device identity
  • the base station may negotiate the CR-DWNDI with UEs in the cell by using the following manners.
  • the following methods are merely examples, and other methods may be used in other examples.
  • the CR-DWNDI is statically defined in a protocol.
  • a certain wireless network device identity that is reserved but has not been defined in the CR system may be statically defined in a protocol as the CR CR-DWNDI for UEs in the cell.
  • the CR-DWNDI may be dynamically configured as system information.
  • a base station may choose one of wireless network device identities that are not reserved and have not been allocated to a UE as the CR-DWNDI for UEs in the cell, and broadcast the CR-DWNDI to UEs in the cell as system information.
  • a UE may receive the CR-DWNDI broadcasted by the base station as system information to UEs in the cell.
  • the CR-DWNDI may be dynamically configured via UE-specific signaling.
  • a base station may choose one of wireless network device identities that are not reserved and have not been allocated to a UE as the CR-DWNDI for UEs in the cell, and send the CR CR-DWNDI to UEs in the cell via UE-specific signaling.
  • a UE may receive the CR-DWNDI sent by the base station via the UE-specific signaling.
  • the base station detects a user of an authorized system appears at the current working frequency (i.e., the working frequency which is the current working available frequency), decides to perform spectrum handover, generates a spectrum handover command.
  • the spectrum handover command includes at least a target frequency and configuration information of wireless resources.
  • a UE receives the spectrum handover command sent by the base station from a channel identified by the CR-DWNDI.
  • the UE may check whether a channel in each downlink sub frame is identified by the CR-DWNDI. If the channel is identified by the CR-DWNDI, the UE receives the spectrum handover command from the base station (i.e., the UE obtains the spectrum handover command according to information after determining the channel is identified by the CR-DWNDI, and starts the procedure 305 of performing spectrum handover according to the spectrum handover command). If the channel is not identified by the CR-DWNDI, the UE continues the procedure of checking whether a channel is identified by the CR-DWNDI.
  • the UE performs spectrum handover according to the spectrum handover command.
  • the UE may perform the spectrum handover according to information in the spectrum handover command, e.g., the target frequency and configurations of wireless resources and the like.
  • the base station may stop sending and receiving data at the working frequency after sending the spectrum handover command via the channel identified by the CR-DWNDI, and recovers the cell at the target frequency.
  • This procedure may be performed after the procedure at block 303, and is not described further here.
  • the channel identified by the CR-DWNDI may be a conventional channel or a newly-defined channel.
  • the information may include, but not limited to, a physical layer control channel, or a physical layer data channel scheduled by the physical layer control channel.
  • a Physical Downlink Control Channel is for transporting Downlink Control Information (DCI) which includes uplink schedule information, downlink schedule information and uplink power control information and the like.
  • DCI Downlink Control Information
  • the PDCCH may be shared by multiple users, and a UE may search within the whole control region for a control signaling message according to a certain rule.
  • the DCI information of the PDCCH is scrambled to be a 16-bit Cyclical Redundancy Check (CRC) by using a radio network temporary identifier (RNTI) to inexplicitly identify the target UE of the DCI.
  • CRC Cyclical Redundancy Check
  • RNTI radio network temporary identifier
  • the CR-DWNDI in an LTE system in an example may include, but not limited to, CR-RNTI.
  • the method of the base station negotiates the CR-RNTI for transmitting the spectrum handover command may include, but not limited to, the following methods.
  • the channel addressable by a CR-DWNDI in an LTE system may include, but not limited to: a PDCCH, i.e., the channel identified by the CR-RNTI may be a PDCCH.
  • the procedure of the base station sending the spectrum handover command via the channel identified by the CR-DWNDI may include: the base station sends or schedules the spectrum handover command by using PDCCH DCI which is in the common search space and is identified by the CR-RNTI.
  • the procedure of sending the spectrum handover command refers to directly sending the spectrum handover command in the PDCCH DCI.
  • the procedure of scheduling the spectrum handover command refers to using the PDCCH DCI to specify information of the PDSCH that transports the spectrum handover command, e.g., the time/frequency resources and transmission format and the like.
  • the PDCCH DCI may include, but not limited to, existing PDCCH DCI for scheduling system common information in LTE systems, e.g., DCI 1A, DCI 1C or the like, or newly-defined PDCCH DCI formats dedicated to scheduling or transporting the spectrum handover command.
  • a base station of a CR system may transmit a spectrum handover command via a channel identified by the CR-DWNDI to instruct all of UEs in the cell to perform spectrum handover when detecting a user from an authorized system appears at the current working frequency.
  • a UE configured with the CR-DWNDI in the cell may check whether a channel in each downlink sub frame is identified by the CR-DWNDI, receive the spectrum handover command according to indication information when detecting a channel identified by the CR-DWNDI, and start performing spectrum handover.
  • the technical mechanism can implement fast and accurate spectrum handover with reduced transmission delay of spectrum handover commands, and generate no interference to users of authorized systems. Therefore, the technical mechanism of various examples can protect service quality of authorized systems while satisfying requirements of users of the CR system for service continuity.
  • the method for spectrum handover in CR systems is described by taking a processing flow of a base station in a CR system as an example.
  • the base station may include modules as shown in Fig. 4 , i.e., a spectrum handover executing module, a spectrum handover decision-making module, a CR-DWNDI managing module and a sending module.
  • the method for spectrum handover in CR systems may include the following procedures as shown in Fig. 5 .
  • the CR-DWNDI module selects a wireless network device identity (WNDI) from WNDIs that are unreserved and have not been allocated to a UE as the CR-DWNDI.
  • WNDI wireless network device identity
  • the spectrum handover decision-making module judges whether a user of an authorized system has appeared at the current working frequency (i.e., judging whether spectrum handover is necessary), the procedure in block 505 is performed if the user of the authorized system has appeared, and the procedure in block 504 is performed again if the user of the authorized system has not appeared.
  • the spectrum handover decision-making module generates a spectrum handover command and specifies a repeat number of sending the spectrum handover command.
  • the spectrum handover command may include at least a target frequency and configuration information of wireless resources.
  • the sending module sends the spectrum handover command via a channel identified by the CR-DWNDI, and adds one to the number of times the spectrum handover command has been sent.
  • the sending module judges whether the number of times the spectrum handover command has been sent has reached the specified repeat number, sets the number of times the spectrum handover command has been sent to be zero and performs the procedure in block 508 if the number of times has reached the specified repeat number, or performs the procedure at block 506 if the number of times has not reached the specified repeat time.
  • the spectrum handover executing module makes the base station stop sending and receiving data at the working frequency, and recovers the cell at the target frequency.
  • the base station may be a cell managing device such as an LTE base station adopting CR techniques, a Radio Network Controller (RNC) in a 3G or 2G system, or the like.
  • RNC Radio Network Controller
  • the method for spectrum handover in CR systems is described by taking a processing flow of a UE in a CR system as an example.
  • the UE may include modules as shown in Fig. 6 , i.e., a spectrum handover executing module, a receiving module, and a CR-DWNDI storing module. Based on the modules, the method for spectrum handover in CR systems may include the following procedures as shown in Fig. 7 .
  • the receiving module receives a downlink sub frame, judges whether a channel in the downlink sub frame is identified by the CR-DWNDI, the procedure in block 704 is performed if the channel is identified by the CR-DWNDI, and the procedure in block 703 is performed again if the channel is not identified by the CR-DWNDI.
  • the receiving module receives a spectrum handover command using information of the channel identified by the CR-DWNDI.
  • the UE may be a UE adopting CR techniques in a mobile communication system such as an LTE system, a TD-SCDMA system, an HSPA system, a CDMA-2000 system, a WCDMA system, a GSM system and the like.
  • a mobile communication system such as an LTE system, a TD-SCDMA system, an HSPA system, a CDMA-2000 system, a WCDMA system, a GSM system and the like.
  • the base station may include the following modules.
  • a determining module 11 may generate a spectrum handover command after it is detected that a user of an authorized system appears at a current working frequency.
  • a sending module 12 may send the spectrum handover command via a channel identified by a CR-DWNDI to instruct UEs in a cell to perform spectrum handover according to the spectrum handover command.
  • the determining module 11 may also determine a repeat number of sending the spectrum handover command.
  • the sending module 12 may send the spectrum handover command via the channel according to the repeat number.
  • the managing module 13 may negotiate with the UEs in the cell the CR-DWNDI by using one of the following:
  • the CR-DWNDI may include a CR-RNTI in an LTE system.
  • the channel identified by the CR-DWNDI may include: a physical layer control channel, or a physical layer data channel scheduled by a physical layer control channel.
  • the channel identified by the CR-DWNDI may include: a PDCCH in an LTE system.
  • the sending module 12 may send or schedule the spectrum handover command by using a PDCCH DCI which is in a common search space and is identified by a CR-RNTI.
  • the modules of an apparatus may be embodied by one entity or may be distributed.
  • the modules may be integrated into one module, or may be divided further into multiple sub modules.
  • the UE may include the following modules.
  • a receiving module 21 may receive a spectrum handover command sent by a base station from a channel identified by a CR-DWNDI.
  • a handover module 22 may perform spectrum handover according to the spectrum handover command.
  • the receiving module 21 may check whether a channel in each downlink sub frame is identified by the CR-DWNDI, and receive the spectrum handover command if a channel is identified by the CR-DWNDI.
  • the UE may also include: a managing module 23.
  • the managing module 23 may negotiate with the base station the CR-DWNDI for sending the spectrum handover command.
  • the managing module 23 may negotiate with the base station the CR-DWNDI by using one of the following:
  • the channel identified by the CR-DWNDI may include: a physical layer control channel, or a physical layer data channel scheduled by a physical layer control channel.
  • the channel identified by the CR-DWNDI in an LTE system may include: a PDCCH.
  • the receiving module 21 may receive the spectrum handover command from a PDCCH DCI which is in a common search space and is identified by a CR-RNTI.
  • the modules of an apparatus may be embodied by one entity or may be distributed.
  • the modules may be integrated into one module, or may be divided further into multiple sub modules.
  • the examples of the present disclosure may be implemented by hardware or by a general-purpose hardware platform together with software.
  • the technical scheme, or the portions making contributions to the conventional art may be embodied by a software product.
  • the software product may be stored in a non-transitory storage medium, may include instructions to cause a computing machine (e.g., a PC, a server or a network device and the like) to execute the method of the various examples of the present disclosure.
  • modules in the apparatus of examples of the present disclosure may be located in the apparatus as described in the examples, or may be located in one or more apparatuses of the examples of the present disclosure when modified accordingly.
  • the modules in examples of the present disclosure may be combined into one module, or may be further divided into multiple sub modules.
  • index numbers of the examples are merely for facilitating description, and should not be interpreted to be representative for the preference order of the examples.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Computer Security & Cryptography (AREA)

Claims (15)

  1. Procédé pour le transfert de spectre dans des systèmes de radiocommunication cognitifs, CR, comprenant :
    l'utilisation d'une ou plusieurs identités de dispositifs de réseau sans fil, WNDI, en tant qu'identité de dispositif de réseau sans fil dédiée au CR, CR-DWNDI, pour des UE dans une cellule ;
    la génération (302), par une station de base, d'une commande de transfert de spectre après la détection qu'un utilisateur d'un système autorisé apparaît à une fréquence de travail actuelle ;
    l'envoi (303), par la station de base, de la commande de transfert de spectre via un canal identifié par la CR-DWNDI afin d'ordonner aux UE de la cellule d'effectuer un transfert de spectre selon la commande de transfert de spectre.
  2. Procédé selon la revendication 1, comprenant en outre :
    la négociation (301), par la station de base avec les UE de la cellule, de la CR-DWNDI pour l'envoi de la commande de transfert de spectre avant l'envoi de la commande de transfert de spectre via un canal identifié par la CR-DWNDI.
  3. Procédé selon la revendication 1, comprenant en outre :
    la définition statique d'une des identités de dispositif de réseau sans fil qui sont réservées mais qui n'ont pas été définies dans un système CR comme les CR-DWNDI pour les UE de la cellule ;
    la sélection, par la station de base, d'une des DWNDI qui ne sont pas réservées et qui n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule et la diffusion de la CR-DWNDI aux UE de la cellule en tant qu'informations système ; et
    la sélection, par la station de base, d'une des DWNDI qui ne sont pas réservées et qui n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule et l'envoi de la CR-DWNDI aux UE de la cellule par signalisation spécifique aux UE.
  4. Procédé selon l'une des revendications 1 à 3, la CR-DWNDI comprenant : une identité temporaire de réseau radio CR, RNTI, dans un système à évolution à long terme, LTE.
  5. Procédé de transfert de spectre dans des systèmes de radiocommunication cognitifs, comprenant :
    l'utilisation, par un équipement utilisateur, UE, d'une cellule, d'une des identités de dispositif de réseau sans fil, WNDI, en tant qu'identité de dispositif de réseau sans fil dédié au CR, CR-DWNDI, pour des UE d'une cellule à laquelle l'UE appartient ;
    la réception, par l'UE, d'une commande de transfert de spectre envoyée par une station de base à partir d'un canal identifié par la CR-DWNDI ; et
    la réalisation, par l'UE, d'un transfert de spectre selon la commande de transfert de spectre.
  6. Procédé selon la revendication 5, dans lequel la réception par l'UE de la commande de transfert de spectre envoyée par la station de base à partir d'un canal identifié par la CR-DWNDI comprend :
    la vérification si un canal dans chaque sous-trame de liaison descendante est identifiée par la CR-DWNDI et la réception de la commande de transfert de spectre si un canal est identifié par la CR-DWNDI.
  7. Procédé selon la revendication 5, comprenant en outre :
    la négociation, par l'UE avec la station de base, de la CR-DWNDI pour l'envoi de la commande de transfert de spectre avant la réception de la commande de transfert de spectre envoyée par la station de base à partir d'un canal identifié par la CR-DWNDI.
  8. Procédé selon la revendication 7, comprenant en outre :
    la définition d'une des identités de dispositif de réseau sans fil qui sont réservées mais n'ont pas été définies dans un système CR comme la CR-DWNDI pour les UE de la cellule ;
    la réception, par l'UE, de la CR-DWNDI diffusée par la station de base en tant qu'information système aux UE de la cellule après que la station de base ait sélectionné une des WNDI qui ne sont pas réservées et n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule ; et
    la réception, par l'UE, de la CR-DWNDI envoyée par la station de base via une signalisation spécifique à l'UE après que la station de base ait sélectionné une des WNDI qui ne sont pas réservées et n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule.
  9. Station de base comprenant :
    un module de gestion conçu pour utiliser une des identités de dispositif de réseau sans fil, WNDI, en tant qu'identité de dispositif de réseau sans fil dédiée à une radiocommunication cognitive, CR-DWNDI pour les UE d'une cellule ;
    un module de détermination conçu pour générer une commande de transfert de spectre après la détection qu'un utilisateur d'un système autorisé apparaît à une fréquence de travail actuelle ; et
    un module d'envoi conçu pour envoyer la commande de transfert de spectre via un canal identifié par la CR-DWNDI pour ordonner aux UE de la cellule d'effectuer un transfert de spectre selon la commande de transfert de spectre.
  10. Station de base selon la revendication 9, comprenant en outre :
    un module de gestion conçu pour négocier avec les UE de la cellule la CR-DWNDI pour l'envoi de la commande de transfert de spectre.
  11. Station de base selon la revendication 10, comprenant en outre :
    un module de gestion conçu pour effectuer une des actions suivantes :
    la définition d'une des identités de dispositif de réseau sans fil qui sont réservées mais n'ont pas été définies dans un système CR en tant que CR-DWNDI pour les UE de la cellule ;
    la sélection d'une des WNDI qui ne sont pas réservées et n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule et la diffusion de la CR-DWNDI aux UE de la cellule en tant qu'information système ; et
    la sélection d'une des WNDI qui ne sont pas réservées et n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule et l'envoi de la CR-DWNDI aux UE de la cellule via une signalisation spécifique aux UE.
  12. Équipement utilisateur, UE, comprenant :
    un module de gestion conçu pour utiliser une des identités de dispositif de réseau sans fil, WNDI, en tant qu'identité de dispositif de réseau sans fil dédiée à une radiocommunication cognitive, CR-DWNDI pour les UE d'une cellule à laquelle l'UE appartient ;
    un module de réception conçu pour la réception d'une commande de transfert de spectre envoyée par une station de base à partir d'un canal identifié par l'identité de dispositif de réseau sans fil dédiée à une radiocommunication cognitive, CR-DWNDI ; et
    un module de transfert pour la réalisation d'un transfert de spectre selon la commande de transfert de spectre.
  13. UE selon la revendication 12, dans lequel
    le module de réception est conçu pour vérifier si un canal dans chaque sous-trame de liaison descendante est identifié par la CR-DWNDI et recevoir la commande de transfert de spectre si un canal est identifié par la CR-DWNDI.
  14. UE selon la revendication 12, comprenant en outre :
    un module de gestion conçu pour négocier avec la station de base de la CR-DWNDI pour l'envoi de la commande de transfert de spectre.
  15. UE selon la revendication 14, comprenant en outre :
    un module de gestion conçu pour effectuer une des actions suivantes :
    la définition d'une des identités de dispositif de réseau sans fil qui sont réservées mais n'ont pas été définies dans un système CR en tant que CR-DWNDI pour les UE de la cellule ;
    la réception, par l'UE, de la CR-DWNDI diffusée par la station de base en tant qu'information système aux UE de la cellule après que la station de base ait sélectionné une des WNDI qui ne sont pas réservées et n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule ; et
    la réception, par l'UE, de la CR-DWNDI envoyée par la station de base via une signalisation spécifique à l'UE après que la station de base ait sélectionné une des WNDI qui ne sont pas réservées et n'ont pas été allouées à un UE en tant que CR-DWNDI pour les UE de la cellule.
EP12856138.8A 2011-12-08 2012-09-28 Procédé et dispositif pour le transfert intercellulaire d'un spectre de fréquence dans un système de radio cognitive Active EP2790431B1 (fr)

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CN201110405827.7A CN102523612B (zh) 2011-12-08 2011-12-08 一种认知无线电系统中的频谱切换方法和设备
PCT/CN2012/082365 WO2013082973A1 (fr) 2011-12-08 2012-09-28 Procédé et dispositif pour le transfert intercellulaire d'un spectre de fréquence dans un système de radio cognitive

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EP2790431A1 (fr) 2014-10-15
US9439110B2 (en) 2016-09-06
CN102523612B (zh) 2015-01-14
EP2790431A4 (fr) 2015-01-14
CN102523612A (zh) 2012-06-27
US20140323096A1 (en) 2014-10-30
WO2013082973A1 (fr) 2013-06-13

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